TECHNICAL FIELD
[0001] The disclosure relates to the field of communications, and more particularly to a
method for wireless communication and a device.
BACKGROUND
[0002] In researches on 5th-Generation (5G) mobile communication technologies, a beamforming
technology is an important technology for improving coverage and spectrum efficiency.
Beamforming refers to an antenna-array-based signal preprocessing technology and generates
a directional beam by regulating a weight of a signal transmitted on each antenna
array element.
[0003] A network device may transmit multiple signals using different beams, and a terminal
device may measure received signals to determine whether a link for transmitting the
signals is too bad to be available. At present, there is yet no solution for how to
perform subsequent processing based on a determination result.
SUMMARY
[0004] Embodiments of the disclosure provide a method for wireless communication and a terminal.
A solution for subsequent processing when a link for transmitting a signal is too
bad to be available is provided, power consumption of the terminal may be reduced,
or beam failure-recovery performance may be improved.
[0005] According to a first aspect, a method for wireless communication is provided. The
method for wireless communication includes that: a terminal reports, at a first protocol
layer, a first event to a second protocol layer, the first event being used to indicate
that quality of a signal in a first signal set is bad enough to satisfy a first condition;
when the terminal determines, at the second protocol layer, occurrence of a second
event based on an occurrence situation of the first event, the terminal stops at least
one of the following at the first protocol layer: measuring the quality of the signal
in the first signal set, determining occurrence of the first event, or reporting the
first event to the second protocol layer; or, the terminal continues the at least
one of the following at the first protocol layer: measuring the quality of the signal
in the first signal set, determining the occurrence of the first event, or reporting
the first event to the second protocol layer. The second event is used to indicate
that link quality corresponding to the signal in the first signal set is bad enough
to satisfy a second condition.
[0006] Accordingly, in the embodiments of the disclosure, when the terminal determines based
on the occurrence situation of the first event at the second protocol layer that the
second event has occurred, the terminal stops at least one of the following at the
first protocol layer: measuring the quality of the signal in the first signal set,
determining occurrence of the first event, or reporting the first event to the second
protocol layer, so that power consumption of the terminal may be reduced; and the
terminal continues the at least one of the following at the first protocol layer:
measuring the quality of the signal in the first signal set, determining the occurrence
of the first event, or reporting the first event to the second protocol layer, so
that beam failure recovery performance may be improved.
[0007] In combination with the first aspect, in a possible implementation of the first aspect,
the operation that the terminal stops, at the first protocol layer, the at least one
of measuring the quality of the signal in the first signal set, determining the occurrence
of the first event, or reporting the first event to the second protocol layer may
include that: when the terminal determines at the second protocol layer that the second
event has occurred, first indication information is sent to the first protocol layer
from the second protocol layer, the first indication information being used to indicate
that the second event has occurred or instruct the terminal to stop the at least one
of the following: measuring the quality of the signal in the first signal set, determining
the occurrence of the first event, or reporting the first event to the second protocol
layer; and responsive to the first indication information, the terminal stops the
at least one of the following at the first protocol layer: measuring the quality of
the signal in the first signal set, determining the occurrence of the first event,
or reporting the first event to the second protocol layer.
[0008] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: the terminal sends second indication information to the first protocol layer
from the second protocol layer, the second indication information being used to instruct
the terminal to perform at least one of the following: measuring a signal in a second
signal set, reporting a signal in the second signal set, of which signal quality is
good enough to satisfy a third condition, or reporting a corresponding measurement
result.
[0009] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: responsive to the second indication information, the terminal performs the at
least one of the following at the first protocol layer: measuring the signal in the
second signal se, reporting the signal in the second signal set, of which the signal
quality is good enough to satisfy the third condition, or reporting the corresponding
measurement result.
[0010] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: when the terminal continues reporting, at the first protocol layer, the first
event to the second protocol layer, the terminal determines at the second protocol
layer whether the link quality corresponding to the signal in the first signal set
is good enough to satisfy a fourth condition according to a situation of the first
event that is continued to be reported.
[0011] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: when the terminal determines at the second protocol layer that the link quality
corresponding to the signal in the first signal set is not good enough to satisfy
the fourth condition, the terminal continues at least one of the following: executing
a link reconfiguration procedure triggered by the second event, or incrementing a
timer corresponding to the link reconfiguration procedure.
[0012] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: when the terminal determines at the second protocol layer that the link quality
corresponding to the signal in the first signal set is good enough to satisfy the
fourth condition, the terminal performs at least one of the following: aborting the
link reconfiguration procedure triggered by the second event, or stopping the timer
corresponding to the link reconfiguration procedure.
[0013] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the link reconfiguration procedure
may include at least one of: selecting, from the second signal set, a signal of which
signal quality is good enough to satisfy the third condition; sending a first message
to a network side, the first message being used to indicate the selected signal; or
monitoring a second message sent by the network side responsive to the first message.
[0014] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: when the terminal determines at the second protocol layer that the link quality
corresponding to the signal in the first signal set is good enough to satisfy the
fourth condition, the terminal continues Physical Downlink Control Channel (PDCCH)
detection in a first control resource set, the first control resource set being a
resource set for PDCCH detection before the second event occurs.
[0015] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the fourth condition may include
at least one of: a number of times that the first event occurs within each of K time
ranges is less than or equal to a first value, the first value being a number greater
than or equal to 0; a number of times that the second event occurs within the each
of the K time ranges is less than or equal to a second value, the second value being
a number greater than or equal to 0; a number of times that the second event occurs
within the K time ranges is less than or equal to a third value, the third value being
a number greater than or equal to 0; a ratio of the number of times that the first
event occurs to a number of times that the first event does not occur within the each
of the K time ranges is less than or equal to a fourth value, the fourth value being
a number greater than or equal to 0; or, a ratio of the number of times that the first
event does not occur to the number of times that the first event occurs within the
each of the K time ranges is greater than or equal to a fifth value, the fifth value
being a number greater than or equal to 0.
[0016] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: the terminal continues at least one of the following: keeping PDCCH detection
in the first control resource set until a first moment arrives, or stopping the PDCCH
detection in the first control resource set after the first moment, the first control
resource set being a resource set for PDCCH detection before the second event occurs.
[0017] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the first moment may be one
of: a moment at which the occurrence of the second event is determined; a moment at
which the first indication information is sent from the second protocol layer to the
first protocol layer; a moment at which a signal is reported from the first protocol
layer to the second protocol layer, the signal being one in a second signal set, of
which signal quality is good enough to satisfy a third condition; a moment at which
a first message is sent to a network side, the first message being used to indicate
at least one selected signal; a moment at which a second message sent by the network
side responsive to the first message is started to be monitored; a moment at which
the second message is received; or, a moment at which configuration information for
configuring a third control resource set is received from the network side.
[0018] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, when the first moment is the
moment at which the second message is started to be monitored, or the moment at which
the second message is received, or the moment at which the configuration information
is received, the method may further include that: in a case that detection in the
first control resource set conflicts with detection in a second control resource set,
the terminal performs PDCCH detection by preferential use of the second control resource
set, the second control resource set being exclusively dedicated to detection of the
second message.
[0019] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the method may further include
that: when the terminal continues reporting, at the first protocol layer, the first
event to the second protocol layer, the terminal stops reporting, at the first protocol
layer, the first event to the second protocol layer from or after a second moment.
[0020] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the second moment may be one
of: a moment at which a signal is reported from the first protocol layer to the second
protocol layer, the signal being one in a second signal set, of which signal quality
is good enough to satisfy a third condition; a moment at which a first message is
sent to a network side, the first message being used to indicate a selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored; a moment at which the second message is received;
or, a moment at which at least one of first indication information, second indication
information, or third indication information sent from the second protocol layer is
received at the first protocol layer. The first indication information is used to
indicate that the second event has occurred, or instruct the terminal to stop the
at least one of the following: measuring the quality of the signal in the first signal
set, determining the occurrence of the first event, or reporting the first event to
the second protocol layer. The second indication information is used to instruct the
terminal to perform at least one of the following: measuring a signal in the second
signal set; reporting the signal in the second signal set, of which the signal quality
is good enough to satisfy the second condition; or reporting a corresponding measurement
result.
[0021] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, each signal in the first signal
set may correspond to a respective one of one or more transmission beams; and each
signal in the second signal set may correspond to a respective one of one or more
transmission beams.
[0022] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, each signal in the first signal
set may be quasi-colocated with at least one control resource set with respect to
a space receiving parameter.
[0023] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the first protocol layer may
be a physical layer, and the second protocol layer may be a Media Access Control (MAC)
layer.
[0024] In combination with the first aspect or any abovementioned possible implementation,
in another possible implementation of the first aspect, the second event may be used
to indicate that a number of times that the first event has successively occurred
exceeds a sixth value.
[0025] According to a second aspect, a method for wireless communication is provided. The
method for wireless communication may include that: a terminal measures a signal in
a first signal set to determine occurrence of a first event, the first event being
used to indicate that quality of the signal in the first signal set is bad enough
to satisfy a first condition; and when it is determined based on an occurrence situation
of the first event that a second event has occurred, the terminal performs at least
one of the following: keeping PDCCH detection in a first control resource set until
a first moment arrives, or stopping the PDCCH detection in the first control resource
set after the first moment, the second event being used to indicate that link quality
corresponding to the signal in the first signal set is bad enough to satisfy a second
condition and the first control resource set being a resource set for PDCCH detection
before the second event occurs.
[0026] Accordingly, in the embodiments of the disclosure, when it is determined based on
the occurrence situation of the first event that the second event has occurred, the
terminal performs the at least one of the following: keeping PDCCH detection in the
first control resource set until the first moment arrives, or stopping the PDCCH detection
in the first control resource set after the first moment, so that power consumption
of the terminal may be reduced while avoiding missing detection of a PDCCH as much
as possible.
[0027] In combination with the second aspect, in a possible implementation of the second
aspect, the first moment may be one of: a moment at which the occurrence of the second
event is determined; a moment at which a signal is reported from the first protocol
layer to a second protocol layer, the signal being one in a second signal set, of
which signal quality is good enough to satisfy a third condition; a moment at which
a first message is sent to a network side, the first message being used to indicate
at least one selected signal; a moment at which a second message sent by the network
side responsive to the first message is started to be monitored; a moment at which
the second message is received; or a moment at which configuration information for
configuring a third control resource set is received from the network side.
[0028] In combination with the second aspect or any abovementioned possible implementation,
in another possible implementation of the second aspect, when the first moment is
the moment at which the second message is started to be monitored, or the moment at
which the second message is received, or the moment at which the configuration information
is received, the method may further include that: in a case that detection in the
first control resource set conflicts with detection in a second control resource set,
the terminal performs PDCCH detection by preferential use of the second control resource
set, the second control resource set being exclusively dedicated to detection of the
second message.
[0029] In combination with the second aspect or any abovementioned possible implementation,
in another possible implementation of the second aspect, each signal in the first
signal set may correspond to a respective one of one or more transmission beams; and
each signal in the second signal set may correspond to a respective one of one or
more transmission beams.
[0030] In combination with the second aspect or any abovementioned possible implementation,
in another possible implementation of the second aspect, each signal in the first
signal set may be quasi-colocated with at least one control resource set with respect
to a space receiving parameter.
[0031] In combination with the second aspect or any abovementioned possible implementation,
in another possible implementation of the second aspect, the second event may be used
to indicate that a number of times that the first event has successively occurred
exceeds a first value.
[0032] According to a third aspect, a method for wireless communication is provided. The
method for wireless communication may include the following operations.
[0033] A terminal measures a signal in a first signal set to determine occurrence of a first
event, the first event being used to indicate that quality of the signal in the first
signal set is bad enough to satisfy a first condition.
[0034] When it is determined based on an occurrence situation of the first event that a
second event has occurred, the terminal measures a signal in a second signal set,
the second event being used to indicate that link quality corresponding to the signal
in the first signal set is bad enough to satisfy a second condition.
[0035] At least one signal of which signal quality is good enough to satisfy a third condition
is selected from the second signal set and reported to a network device.
[0036] Accordingly, in the embodiments of the disclosure, the terminal detects the signal
in the second signal set only when it is determined that the second event has occurred,
so that power consumption of the terminal may be reduced.
[0037] In combination with the third aspect, in a possible implementation of the third aspect,
each signal in the first signal set may correspond to a respective one of one or more
transmission beams; and each signal in the second signal set may correspond to a respective
one of one or more transmission beams.
[0038] In combination with the third aspect or any abovementioned possible implementation,
in another possible implementation of the third aspect, each signal in the first signal
set may be quasi-colocated with at least one control resource set with respect to
a space receiving parameter.
[0039] In combination with the third aspect or any abovementioned possible implementation,
in another possible implementation of the third aspect, the second event may be used
to indicate that a number of times that the first event has successively occurred
exceeds a first value.
[0040] According to a fourth aspect, a terminal is provided. The terminal may include units
configured to perform the method in any aspect or any possible implementation thereof.
[0041] According to a fifth aspect, a terminal is provided. The terminal may include a memory
and a processor. The memory stores instructions, and the processor is configured to
call the instructions stored in the memory to execute the method in any aspect or
any optional implementation thereof.
[0042] According to a sixth aspect, a computer-readable medium is provided. The computer-readable
medium stores a program code configured to be executed by a terminal device, the program
code including instructions configured to execute the method in any aspect or each
implementation thereof.
[0043] According to a seventh aspect, a computer program product is provided, which includes
instructions configured to execute the method in any aspect or each implementation
thereof.
BRIEF DESCRIPTION OF THE DRAWINGS
[0044] In order to describe the technical solutions of the embodiments of the disclosure
more clearly, the drawings required to be used in descriptions about the embodiments
or a related art will be simply introduced below. It is apparent that the drawings
described below are only some embodiments of the disclosure. Other drawings may further
be obtained by those of ordinary skill in the art according to these drawings without
creative work.
FIG. 1 is a schematic diagram of a system for wireless communication according to
an embodiment of the disclosure.
FIG. 2 is a schematic flowchart of a method for wireless communication according to
an embodiment of the disclosure.
FIG. 3 illustrates a starting or ending moment for detection of a specific PDCCH according
to an embodiment of the disclosure.
FIG. 4 is a schematic flowchart of a method for wireless communication according to
an embodiment of the disclosure.
FIG. 5 is a schematic flowchart of a method for wireless communication according to
an embodiment of the disclosure.
FIG. 6 is a schematic block diagram of a terminal according to an embodiment of the
disclosure.
FIG. 7 is a schematic block diagram of a terminal according to an embodiment of the
disclosure.
FIG. 8 is a schematic block diagram of a terminal according to an embodiment of the
disclosure.
FIG. 9 is a schematic block diagram of a system chip according to an embodiment of
the disclosure.
FIG. 10 is a schematic block diagram of a communication device according to an embodiment
of the disclosure.
DETAILED DESCRIPTION
[0045] The technical solutions in the embodiments of the disclosure will be described below
in combination with the drawings in the embodiments of the disclosure. It is apparent
that the described embodiments are not all embodiments but part of embodiments of
the disclosure. All other embodiments obtained by those of ordinary skill in the art
based on the embodiments in the disclosure without creative work shall fall within
the scope of protection of the disclosure.
[0046] The technical solutions of the embodiments of the disclosure may be applied to various
communication systems, for example, a Global System of Mobile Communication (GSM),
a Code Division Multiple Access (CDMA) system, a Wideband Code Division Multiple Access
(WCDMA) system, a General Packet Radio Service (GPRS), a Long Term Evolution (LTE)
system, an LTE Frequency Division Duplex (FDD) system, LTE Time Division Duplex (TDD),
a Universal Mobile Telecommunication System (UMTS), a Worldwide Interoperability for
Microwave Access (WiMAX) communication system or a future 5G system (which may also
be called a New Radio (NR) system).
[0047] FIG. 1 illustrates a system for wireless communication 100 to which the embodiments
of the disclosure are applied. The wireless communication system 100 may include a
network device 110. The network device 100 may be a device communicating with a terminal
device. The network device 100 may provide communication coverage for a specific geographical
region and may communicate with a terminal device (for example, User Equipment (UE))
in the coverage. Optionally, the network device 100 may be a Base Transceiver Station
(BTS) in the GSM or the CDMA system, may also be a NodeB (NB) in the WCDMA system,
and may further be an Evolutional Node B (eNB or eNodeB) in the LTE system, or a wireless
controller in a Cloud Radio Access Network (CRAN). Or the network device may be a
relay station, an access point, a vehicle-mounted device, a wearable device, a network-side
device in a future 5G network, a network device in a future evolved Public Land Mobile
Network (PLMN) or the like.
[0048] The wireless communication system 100 further includes at least one terminal device
120 located within the coverage of the network device 110. The terminal device 120
may be mobile or fixed. Optionally, the terminal device 120 may refer to an access
terminal, UE, a user unit, a user station, a mobile station, a mobile radio station,
a remote station, a remote terminal, a mobile device, a user terminal, a terminal,
a wireless communication device, a user agent or a user device. The access terminal
may be a cell phone, a cordless phone, a Session Initiation Protocol (SIP) phone,
a Wireless Local Loop (WLL) station, a Personal Digital Assistant (PDA), a handheld
device with a wireless communication function, a computing device, another processing
device connected to a wireless modem, a vehicle-mounted device, a wearable device,
a terminal device in the future 5G network, a terminal device in the future evolved
PLMN or the like.
[0049] Optionally, Device to Device (D2D) communication may be implemented between the terminal
devices 120.
[0050] Optionally, the 5G system or network may also be called an NR system or network.
[0051] A network device and two terminal devices are exemplarily illustrated in FIG. 1.
Optionally, the wireless communication system 100 may include multiple network devices
and another number of terminal devices may be included in coverage of each network
device. There are no limits made thereto in the embodiments of the disclosure.
[0052] Optionally, the wireless communication system 100 may further include other network
entities such as a network controller and a mobility management entity. There are
no limits made thereto in the embodiments of the disclosure.
[0053] It is to be understood that terms "system" and "network" in the disclosure may usually
be exchanged in the disclosure. In the disclosure, term "and/or" is only an association
relationship describing associated objects and represents that three relationships
may exist. For example, A and/or B may represent three conditions: i.e., independent
existence of A, existence of both A and B and independent existence of B. In addition,
character "/" in the disclosure usually represents that previous and next associated
objects form an "or" relationship.
[0054] FIG. 2 is a schematic flowchart of a method for wireless communication 200 according
to an embodiment of the disclosure. The method 200 may optionally be applied, but
not limited, to the system illustrated in FIG. 1. As illustrated in FIG. 2, the method
200 includes at least part of the following contents.
[0055] In 210, a terminal reports, at a first protocol player, a first event to a second
protocol layer. Herein, the first event is used to indicate that quality of a signal
in a first signal set is bad enough to satisfy a first condition.
[0056] Optionally, the first protocol layer is a physical layer, and the second protocol
layer is a higher layer and, for example, may be a Media Access Control (MAC) layer.
[0057] Optionally, the signal in the first signal set may be a Channel State Information
Reference Signal (CSI-RS), a Synchronous Signal (SS), or a Physical Broadcast Channel
(PBCH).
[0058] Optionally, the signals in the first signal set may be transmitted through different
beams.
[0059] Here, the terminal may measure the signal in the first signal set and, when discovering
a signal with relatively high signal quality, may notify an index of the signal to
a network side, and the network side may transmit a downlink channel or a signal,
for example, a PDCCH, to the terminal by use of a transmission beam on which the signal
is transmitted.
[0060] Optionally, each signal in the first signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0061] Specifically, the control resource set may be used to transmit the PDCCH, and thus
the terminal may measure the signal in the first signal set to determine whether quality
of the PDCCH, which is transmitted through the control resource set quasi-colocated
with the signal with respect to the space receiving parameter, satisfies a threshold
which is preset or configured by the network side.
[0062] Optionally, the terminal may determine, at the first protocol layer, whether performance
of a measurement result of the signal in the first signal set is higher than the threshold.
When the performance of the measurement result is lower than the threshold, it is
determined that the first event, i.e., a beam failure instance, occurs once, and information
related to the first event is reported to the second protocol layer.
[0063] Optionally, the terminal may report the first event to the second protocol layer
when the terminal determines, at the first protocol layer, that the quality of each
signal in the first signal set is bad enough to satisfy the first condition.
[0064] Optionally, the terminal may periodically measure the signal in the first signal
set.
[0065] Optionally, the first event may be periodically reported, and if the first event
is not reported once, the higher layer may know that the performance of the present
corresponding measurement result is higher than the threshold and the first event
does not occur.
[0066] In 220, when the terminal determines, at the second protocol layer, occurrence of
a second event based on an occurrence situation of the first event,
the terminal stops at least one of the following at the first protocol player: measuring
the quality of the signal in the first signal set, determining occurrence of the first
event, or reporting the first event to the second protocol layer; or,
the terminal continues the at least one of the following at the first protocol player:
measuring the quality of the signal in the first signal set, determining the occurrence
of the first event, or reporting the first event to the second protocol layer.
[0067] Here, the second event is used to indicate that link quality corresponding to the
signal in the first signal set is bad enough to satisfy a second condition.
[0068] Specifically, the terminal may determine whether the second event occurs based on
at least one of the number of the received first events or a frequency of occurrence
of the first event or the like. The second condition may be related to at least one
of the number of the first events or the frequency of the occurrence of the first
event. If the second condition is met, it is indicated that the link quality corresponding
to the signal in the first signal set is relatively bad.
[0069] For example, if the terminal determines at the second protocol layer that the number
of continuously received (continuously received within a specific time period) first
events exceeds a constant value, it may be determined that the second event has occurred
and it may also be determined that a beam failure has occurred.
[0070] Optionally, after it is determined that the second event has occurred, the terminal
stops at least one of the following at the first protocol layer: measuring the quality
of the signal in the first signal set, determining the occurrence of the first event,
or reporting the first event to the second protocol layer. Therefore, power consumption
of the terminal may be improved.
[0071] Specifically, when the terminal determines at the second protocol layer that the
second event has occurred, the terminal sends, at the second protocol layer, first
indication information to the first protocol layer. The first indication information
is used to indicate that the second event has occurred or instruct the terminal to
stop the at least one of the following at the first protocol layer: measuring the
quality of the signal in the first signal set, determining the occurrence of the first
event, or reporting the first event to the second protocol layer. Responsive to the
first indication information, the terminal stops the at least one of the following
at the first protocol layer: measuring the quality of the signal in the first signal
set, determining the occurrence of the first event, or reporting the first event to
the second protocol layer.
[0072] Optionally, after it is determined that the second event has occurred, the terminal
continues the at least one of the following at the first protocol layer: measuring
the quality of the signal in the first signal set, determining the occurrence of the
first event, or reporting the first event to the second protocol layer, so as to determine
whether the quality of the signal in the first signal set gets high, thereby improving
beam failure-recovery performance.
[0073] The terminal may send, at the second protocol layer, indication information to the
first protocol layer to instruct the terminal to continue at least one of the following
at the first protocol layer: measuring the quality of the signal in the first signal
set, determining the occurrence of the first event, or reporting the first event to
the second protocol layer.
[0074] Or, the terminal may not send, at the second protocol layer, the indication information
to the first protocol layer, the indication information instructing the terminal to
continue the at least one of the following at the first protocol layer: measuring
the quality of the signal in the first signal set, determining the occurrence of the
first event, or reporting the first event to the second protocol layer, and the terminal
may directly continue the at least one of the following at the first protocol layer:
measuring the quality of the signal in the first signal set, determining the occurrence
of the first event, or reporting the first event to the second protocol layer.
[0075] Optionally, when it is determined that the second event has occurred, the terminal
sends, at the second protocol layer, second indication information to the first protocol
layer. The second indication information is used to instruct the terminal to perform
at least one of the following operations: measuring a signal in a second signal set,
or reporting a signal in the second signal set, of which signal quality is good enough
to satisfy a third condition, or reporting a corresponding measurement result.
[0076] Optionally, the signal in the second signal set may be a CSI-RS, an SS or a PBCH.
[0077] Optionally, the signals in the second signal set may be transmitted through different
beams.
[0078] Here, the terminal may measure the signal in the second signal set and, when discovering
a signal with relatively high signal quality, may notify an index of the signal to
the network side, and the network side may transmit a downlink channel or a signal,
for example, a PDCCH, to the terminal by use of a transmission beam on which the signal
is transmitted.
[0079] Optionally, each signal in the second signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0080] Specifically, the control resource set may be used to transmit the PDCCH and thus
the terminal may measure the signal in the second signal set to determine whether
quality of the PDCCH, which is transmitted through the control resource set quasi-colocated
with the signal with respect to the space receiving parameter, satisfies the threshold
which is preset or configured by the network side.
[0081] Optionally, responsive to the second indication information, the terminal performs
the at least one of the following operations at the first protocol layer: measuring
the signal in the second signal set, or reporting the signal in the second signal
set, of which the signal quality is good enough to satisfy the third condition, or
reporting a corresponding measurement result.
[0082] Specifically, the terminal discovers, at the physical layer, one or more new signals,
Layer 1 (L1)-Reference Signal Receiving Power (RSRP) corresponding to each of the
one or more new signals being greater than a threshold, the terminal sends identifiers
and L1-RSRP measurement results of these signals to the higher layer, then the higher
layer selects one of these signals as a target new signal according to reporting of
the physical layer.
[0083] Optionally, after it is determined that the second event has occurred, the terminal
may start a timer and execute a link reconfiguration procedure during a duration of
the timer.
[0084] Here, the link reconfiguration procedure may include at least one of:
a signal of which signal quality is good enough to satisfy the third condition is
selected from the second signal set;
a first message is sent to the network side; here, the first message is used to indicate
the selected signal and the first message may be called a beam failure request; specifically,
the terminal initiates transmission by use of a Physical Random Access Channel (PRACH)
corresponding to the selected signal or reports the new selected signal through a
Physical Uplink Control Channel (PUCCH); or,
a second message sent by the network side responsive to the first message is monitored.
[0085] Optionally, when the terminal continues reporting, at the first protocol layer, the
first event to the second protocol layer, the terminal determines, at the second protocol
layer, whether the link quality corresponding to the signal in the first signal set
is good enough to satisfy a fourth condition according to a situation of the first
event that is continued to be reported.
[0086] Optionally, the fourth condition includes at least one of the following conditions:
a number of times that the first event occurs within each of K time ranges is less
than or equal to a first value, the second value being a number greater than or equal
to 0;
a number of times that the second event occurs within the each of the K time ranges
is less than or equal to a second value, the second value being a number greater than
or equal to 0;
a number of times that the second event occurs within the K time ranges is less than
or equal to a third value, the third value being a number greater than or equal to
0;
a ratio of the number of times that the first event occurs to a number of times that
the first event does not occur within each of the K time ranges is less than or equal
to a fourth value, the fourth value being a number greater than or equal to 0; or,
a ratio of the number of times that the first event does not occur to the number of
times that the first event occurs within the each of the K time ranges is greater
than or equal to a fifth value, the fifth value being a number greater than or equal
to 0.
[0087] K may be an integer greater than or equal to 1. Optionally, when K is greater than
or equal to 2, the K time ranges may be continuous time ranges.
[0088] It is to be understood that, in the embodiment of the disclosure, being greater than
or equal to may be understood as the following three conditions: being greater than,
being equal to, and being more than or equal to. Being less than or equal to may be
understood as the following three conditions: being less than, being equal to, and
being less than or equal to.
[0089] Descriptions will be made below in combination with some examples.
[0090] At first, there is made such a hypothesis that q0 is a signal set including one or
more signals (which may be CSI-RSs and may also be SS/PBCH blocks), and a terminal
may measure quality of the signal in the signal set to judge whether a beam failure
instance may occur (here, a judgment threshold may be a hypothetical Block Error Ratio
(BLER)). If performance corresponding to all the signals in q0 is lower than the threshold,
one beam failure instance is determined.
[0091] The terminal measures, at a lower layer, link quality corresponding to the signal
in q0, and then notifies a higher layer when the link quality is lower than the corresponding
threshold. If the higher layer determines according to a notification of the lower
layer that a beam failure has occurred (for example, N notifications each of which
indicates that the link quality is lower than the corresponding threshold are continuously
received), the higher layer continues a subsequent flow.
[0092] A timer for controlling a beam failure recovery procedure (which may also be called
a link reconfiguration procedure) is started.
[0093] The lower layer is notified to report one or more signals satisfying the threshold
in q1.
[0094] A beam failure request is sent to the network side.
[0095] A response fed back by the network side is detected in a specified window.
[0096] Meanwhile, the lower layer continues measuring and reporting the signal in q0, the
higher layer continues making a judgment according to reported notification information,
and if it is judged that a present link reenters a relatively good state, the terminal
cancels the flow to be continued.
[0097] For how to judge that the present link reenters the relatively good state, some examples
will be presented below.
Example 1
[0098] After the terminal judges that the beam failure has occurred (namely judging that
the present link quality is bad), the terminal works according to a beam failure judgment
flow to make X judgments in occurrence of the beam failure in a time range, and if
X is less than or equal to a certain threshold (the threshold may be preset in the
terminal or configured by the network), the terminal judges that the present link
reenters the relatively good state.
[0099] The time range may be implemented by use of a timer and may also be implemented in
other manners , and the time range may be preset in the terminal or configured by
the network.
Example 2
[0100] There is only one time range in Example 1. In Example 2, based on Example 1, if X
is less than or equal to a certain threshold in each of K continuous time ranges,
the terminal judges that the present link reenters the relatively good state.
Example 3
[0101] After the terminal judges that the beam failure has occurred (namely judging that
the present link quality is bad), according to that the total number X of received
beam failure instances is less than or equal to a certain threshold (the threshold
may be specified in a protocol or configured by the network) in a time range, the
UE judges that the present link reenters the relatively good state. The threshold
may be 0.
[0102] The time range may be implemented by use of a timer and may also be implemented in
other manners, and the time range may be preset in the terminal or configured by the
network.
Example 4
[0103] There is only one time range in Example 3. In Example 4, based on Example 3, if X
is less than or equal to a certain threshold in each of K continuous time ranges,
the UE judges that the present link reenters the relatively good state.
Example 5
[0104] After the terminal judges that the beam failure has occurred (namely judging that
the present link quality is bad), according to that a ratio of the total number of
the received beam failure instances to a number of beam failure instances that do
not occur is less than or less than or equal to a certain threshold (the threshold
may be preset in the terminal or configured by the network) in a time range, the terminal
judges that the present link reenters the relatively good state. According to that
a ratio of the total number of the received beam failure instances that do not occur
to the number of the beam failure instances that occur is greater than or equal to
a certain threshold (the threshold may be preset in the terminal or configured by
the network) in a time range, the terminal judges that the present link reenters the
relatively good state.
[0105] The time range may be implemented by use of a timer and may also be implemented in
other manners, and the time range may be preset in the terminal or configured by the
network.
Example 6
[0106] There is only one time range in Example 5. In Example 6, based on Example 5, if the
ratios satisfy corresponding conditions in each of K continuous time ranges, the terminal
judges that the present link reenters the relatively good state.
Example 7
[0107] After the UE judges that the beam failure has occurred (namely judging that the present
link quality is bad), whether the beam failure occurs is judged according to reporting
of the lower layer in a time range, and if no beam failure occurs in each of the K
continuous time ranges, the UE judges that the present link reenters the relatively
good state. K may be preset in the terminal or configured by the network. Each time
range may be implemented by use of a timer, and the time range may be preset in the
terminal or configured by the network.
[0108] Optionally, when the terminal determines at the second protocol layer that the link
quality corresponding to the signal in the first signal set is not good enough to
satisfy the fourth condition, the terminal continues at least one of the following
operations: executing a link reconfiguration procedure triggered by the second event,
or incrementing a timer corresponding to the link reconfiguration procedure.
[0109] Optionally, when the terminal determines at the second protocol layer that the link
quality corresponding to the signal in the first signal set is good enough to satisfy
the fourth condition, the terminal performs at least one of the following operations:
aborting the link reconfiguration procedure triggered by the second event, or stopping
the timer corresponding to the link reconfiguration procedure.
[0110] Optionally, when the terminal determines at the second protocol layer that the link
quality corresponding to the signal in the first signal set is good enough to satisfy
the fourth condition, the terminal continues PDCCH detection in a first control resource
set. The first control resource set is a resource set for PDCCH detection before the
second event occurs.
[0111] The operation that the terminal continues PDCCH detection in the first control resource
set when it is determined that the link quality corresponding to the signal in the
first signal set is good enough to satisfy the fourth condition means that the terminal
may already stop PDCCH detection in the first control resource set or keep PDCCH detection
in the first control resource set before.
[0112] In the first control resource set, the network side transmits a PDCCH by use of a
transmission beam corresponding to a signal, reported by the terminal, in the first
signal set.
[0113] Optionally, the terminal may perform at least one of the following operations: keeping
PDCCH detection in the first control resource set until a first moment arrives; or,
stopping the PDCCH detection in the first control resource set after the first moment.
[0114] The first control resource set is a resource set for PDCCH detection before the second
event occurs.
[0115] Optionally, as illustrated in FIG. 3, the first moment may be:
a moment at which the occurrence of the second event is determined;
or, a moment at which the first indication information is sent from the second protocol
layer to the first protocol layer;
or, a moment at which a signal is reported from the first protocol layer to the second
protocol layer, the signal being one in a second signal set, of which signal quality
is good enough to satisfy the third condition;
or, a moment at which the first message is sent to the network side, the first message
being used to indicate at least one selected signal;
or, a moment at which the second message sent by the network side responsive to the
first message is started to be monitored;
or, a moment at which the second message is received;
or, a moment at which configuration information for configuring a third control resource
set is received from the network side. The third control resource set may be a control
resource set configured for a new signal reported by a terminal
[0116] Optionally, when the first moment is the moment at which the second message is started
to be monitored, or the moment at which the second message is received, or the moment
at which the configuration information for configuring the third control resource
set is received, the method further includes the following operation.
[0117] In a case that detection in the first control resource set conflicts with detection
in a second control resource set, the terminal performs PDCCH detection by preferential
use of the second control resource set, the second control resource set being exclusively
dedicated to detection of the second message.
[0118] Optionally, the detection in the first control resource set conflicts with the detection
in the second control resource set means that the terminal is required to simultaneously
detect the two resource sets. Because of a processing capability of the terminal or
different directions of receiving beams, the terminal may not simultaneously detect
the two resource sets.
[0119] Optionally, when the terminal continues reporting, at the first protocol layer, the
first event to the second protocol layer, the terminal stops reporting, at the first
protocol layer, the first event to the second protocol layer from or after a second
moment.
[0120] Optionally, the second moment may be:
the moment at which the signal is reported from the first protocol layer to the second
protocol layer, the signal being one in a second signal set, of which signal quality
is good enough to satisfy the third condition;
or, the moment at which the first message is sent to the network side, the first message
being used to indicate the selected signal;
or, the moment at which the second message sent by the network side responsive to
the first message is started to be monitored (as illustrated in FIG. 3);
or, the moment at which the second message is received;
or, a moment at which at least one of the first indication information, the second
indication information, or third indication information sent at the second protocol
layer is received at the first protocol layer.
[0121] The first indication information is used to indicate that the second event has occurred
or instruct the terminal to stop at least one of the following operations: measuring
the quality of the signal in the first signal set, determining the occurrence of the
first event, or reporting the first event to the second protocol layer. The second
indication information is used to instruct the terminal to perform at least one of
the following operations: measuring the signal in the second signal set, reporting
the signal in the second signal set, of which the signal quality is good enough to
satisfy the second condition; or reporting the corresponding measurement result.
[0122] In order to conveniently understand the disclosure, descriptions will be made below
in combination with some examples.
[0123] At first, there is made such a hypothesis that q0 is a set including one or more
signals (which may be CSI-RSs and may also be SS/PBCH blocks), and the terminal may
measure quality of the signal in the signal set to judge whether a beam failure instance
may occur (here, a judgment threshold is a hypothetical BLER). If performance corresponding
to all the signals in q0 is worse than the threshold, it is determined that a beam
failure instance occurs.
[0124] q1 is a set including one or more signals (which may be CSI-RSs and may also be SS/PBCH
blocks), and the terminal may measure corresponding quality to determine whether link
quality corresponding to the signal is higher than a threshold to accordingly determine
a possible new beam candidate set (a judgment threshold is L1-Reference Signal Receiving
Power (RSRP)).
Example 1
[0125] The UE measures link quality corresponding to the signal in q0, and if the link quality
is lower than the corresponding threshold, the higher layer is notified. If the higher
layer determines according to a notification of the lower layer that a beam failure
occurs (for example, N notifications each of which indicates that the link quality
is lower than the corresponding threshold are continuously received), the UE may optionally
execute the following subsequent operations.
[0126] The UE stops measuring and judging a link corresponding to the signal in q0.
[0127] The UE stops notifying the higher layer about that the link quality is lower than
the corresponding threshold at the lower layer.
[0128] The UE starts measuring the signal in q1.
[0129] The UE reports information, that satisfies the threshold, of one or more signals
in q1 at a later moment.
Embodiment 2
[0130] The UE measures the link quality corresponding to the signal in q0, and if the link
quality is lower than the corresponding threshold, the higher layer is notified. If
the higher layer determines according to the notification of the lower layer that
a beam failure occurs (for example, N notifications each of which indicates that the
link quality is lower than the corresponding threshold are continuously received),
the higher layer continues a subsequent flow.
[0131] A timer for controlling a beam failure recovery procedure is started.
[0132] The lower layer is notified to report one or more signals satisfying the threshold
in q1.
[0133] A beam failure request is sent.
[0134] A response fed back by the network side is detected in a specified window.
[0135] Meanwhile, the lower layer continues measuring and reporting in q0, the higher layer
continues making a judgment according to reported notification information, and if
it is judged that no beam failure occurs at present, the UE cancels the flow to be
continued.
[0136] Accordingly, in the embodiment of the disclosure, when the terminal determines, at
the second protocol layer, occurrence of the second event based on the occurrence
situation of the first event, the terminal stops at least one of the following operations
at the first protocol layer: measuring the quality of the signal in the first signal
set, determining the occurrence of the first event, or reporting the first event to
the second protocol layer, so that the power consumption of the terminal may be reduced;
and the terminal continues the at least one of the following operations at the first
layer: measuring the quality of the signal in the first signal set, determining the
occurrence of the first event, or reporting the first event to the second protocol
layer, so that the beam failure recovery performance may be improved.
[0137] FIG. 4 is a schematic flowchart of a method for wireless communication 300 according
to an embodiment of the disclosure. The method 300 includes at least part of contents
in the following contents.
[0138] In 310, a terminal measures a signal in a first signal set to determine occurrence
of a first event. Herein, the first event is used to indicate that quality of the
signal in the first signal set is bad enough to satisfy a first condition.
[0139] In 320, when occurrence of a second event is determined based on an occurrence situation
of the first event, the terminal performs at least one of the following operations:
keeping PDCCH detection in a first control resource set until a first moment arrives,
or stopping the PDCCH detection in the first control resource set after the first
moment. The first control resource set is a resource set for PDCCH detection before
the second event occurs. The second event is used to indicate that link quality corresponding
to the signal in the first signal set is bad enough to satisfy a second condition.
[0140] Accordingly, in the embodiment of the disclosure, when the occurrence of the second
event is determined based on the occurrence situation of the first event, the terminal
performs the at least one of the following operations: keeping PDCCH detection in
the first control resource set until the first moment arrives, or stopping PDCCH detection
in the first control resource set after the first moment, so that power consumption
of the terminal may be reduced while avoiding missing detection of a PDCCH as much
as possible.
[0141] Optionally, the first moment may be:
a moment at which the occurrence of the second event is determined;
or, a moment at which a signal is reported to a second protocol layer from a first
protocol layer, the signal being one in a second signal set, of which signal quality
is good enough to satisfy a third condition;
or, a moment at which a first message is sent to a network side, the first message
being used to indicate at least one selected signal;
or, a moment at which a second message sent by the network side responsive to the
first message is started to be monitored;
or, a moment at which the second message is received;
or, a moment at which configuration information for configuring a third control resource
set is received from the network side.
[0142] Optionally, when the first moment is the moment at which the second message is started
to be monitored, or the moment at which the second message is received, or the moment
at which the configuration information is received, the method further includes the
following operation.
[0143] In a case that detection in the first control resource set conflicts with detection
in a second control resource set, the terminal performs PDCCH detection by preferential
use of the second control resource set, the second control resource set being exclusively
dedicated to detection of the second message.
[0144] Optionally, each signal in the first signal set corresponds to a respective one of
one or more transmission beams; and each signal in the second signal set corresponds
to a respective one of one or more transmission beams.
[0145] Optionally, each signal in the first signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0146] Optionally, the second event is used to indicate that a number of times that the
first event has successively occurred exceeds a first value.
[0147] It is to be understood that specific implementation of the method 300 may refer to
descriptions about the method 200 and, for simplicity, will not be elaborated herein.
[0148] FIG. 5 is a schematic flowchart of a method for wireless communication 400 according
to an embodiment of the disclosure. The method 400 includes at least part of contents
in the following contents.
[0149] In 410, a terminal measures a signal in a first signal set to determine occurrence
of a first event. The first event is used to indicate that quality of the signal in
the first signal set is bad enough to satisfy a first condition.
[0150] In 420, when occurrence of a second event is determined based on an occurrence situation
of the first event, the terminal measures a signal in a second signal set. The second
event is used to indicate that link quality corresponding to the signal in the first
signal set is bad enough to satisfy a second condition.
[0151] In 430, at least one signal of which signal quality is good enough to satisfy a third
condition in the second signal set is selected and reported to a network device.
[0152] Optionally, each signal in the first signal set corresponds to a respective one of
one or more transmission beams; and each signal in the second signal set corresponds
to a respective one of one or more transmission beams.
[0153] Optionally, each signal in the first signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0154] Optionally, the second event is used to indicate that a number of times that the
first event has successively occurred exceeds a first value.
[0155] Accordingly, in the embodiment of the disclosure, the terminal detects the signal
in the second signal set only when it is determined that the second event occurs,
so that power consumption of the terminal may be reduced.
[0156] It is to be understood that specific implementation of the method 300 may refer to
descriptions about the method 200 and, for simplicity, will not be elaborated herein.
[0157] FIG. 6 is a schematic block diagram of a terminal 500 according to an embodiment
of the disclosure. As illustrated in FIG. 6, the terminal 500 includes a first processing
unit 510 and a second processing unit 520. The first processing unit 510 is configured
to report, at a first protocol layer, a first event to a second protocol layer, the
first event being used to indicate that quality of a signal in a first signal set
is bad enough to satisfy a first condition. The second processing unit 520 is configured
to determine, at the second protocol layer, occurrence of a second event based on
an occurrence situation of the first event, the second event being used to indicate
that link quality corresponding to the signal in the first signal set is bad enough
to satisfy a second condition. The first processing unit 510 is further configured
to, when the second event has occurred, stop at least one of the following at the
first protocol layer: measuring the quality of the signal in the first signal set,
determining occurrence of the first event, or reporting the first event to the second
protocol layer; or, continue the at least one of the following at the first protocol
layer: measuring the quality of the signal in the first signal set, determining the
occurrence of the first event, or reporting the first event to the second protocol
layer.
[0158] Optionally, the second processing unit 520 is further configured to, when it is determined
at the second protocol layer that the second event has occurred, send, at the second
protocol layer, first indication information to the first protocol layer, the first
indication information being used to indicate that the second event has occurred or
instruct to stop the at least one of the following: measuring the quality of the signal
in the first signal set, determining the occurrence of the first event, or reporting
the first event to the second protocol layer. The first processing unit 510 is configured
to, responsive to the first indication information, stop the at least one of the following
at the first protocol layer: measuring the quality of the signal in the first signal
set, determining the occurrence of the first event, or reporting the first event to
the second protocol layer.
[0159] Optionally, the second processing unit 520 is further configured to send, at the
second protocol layer, second indication information to the first protocol layer,
the second indication information being used to instruct the terminal to perform at
least one of the following: measuring a signal in a second signal set, reporting a
signal in the second signal set, of which signal quality is good enough to satisfy
a third condition, or reporting a corresponding measurement result.
[0160] Optionally, the first processing unit 510 is further configured to, responsive to
the second indication information, perform the at least one of the following at the
first protocol layer: measuring the signal in the second signal set, reporting the
signal in the second signal set, of which the signal quality is good enough to satisfy
the third condition, or reporting the corresponding measurement result.
[0161] Optionally, the first processing unit 510 is further configured to, when the first
event is continued to be reported to the second protocol layer at the first protocol
layer, determine, at the second protocol layer, whether the link quality corresponding
to the signal in the first signal set is good enough to satisfy a fourth condition
according to a situation of the first event that is continued to be reported.
[0162] Optionally, the second processing unit 520 is further configured to, when it is determined
at the second protocol layer that the link quality corresponding to the signal in
the first signal set is not good enough to satisfy the fourth condition, continue
at least one of the following: executing a link reconfiguration procedure triggered
by the second event, or incrementing a timer corresponding to the link reconfiguration
procedure.
[0163] Optionally, the second processing unit 520 is further configured to, when it is determined
at the second protocol layer that the link quality corresponding to the signal in
the first signal set is good enough to satisfy the fourth condition, perform at least
one of the following: aborting the link reconfiguration procedure triggered by the
second event, or stopping the timer corresponding to the link reconfiguration procedure.
[0164] Optionally, the link reconfiguration procedure includes at least one of: selecting,
from the second signal set, a signal of which the signal quality is good enough to
satisfy the third condition; sending a first message to a network side, the first
message being used to indicate the selected signal; or monitoring a second message
sent by the network side responsive to the first message.
[0165] Optionally, the terminal 500 further includes a detection unit 530, configured to,
when the second processing unit 520 determines at the second protocol layer that the
link quality corresponding to the signal in the first signal set is good enough to
satisfy the fourth condition, continue PDCCH detection in a first control resource
set, the first control resource set being a resource set for PDCCH detection before
the second event occurs.
[0166] Optionally, the fourth condition includes at least one of the following conditions.
[0167] A number of times that the first event occurs within each of K time ranges is less
than or equal to a first value, the first value being a number greater than or equal
to 0.
[0168] A number of times that the second event occurs within the each of the K time ranges
is less than or equal to a second value, the second value being a number greater than
or equal to 0.
[0169] A number of times that the second event occurs within the K time ranges is less than
or equal to a third value, the third value being a number greater than or equal to
0.
[0170] A ratio of the number of times that the first event occurs to a number of times that
the first event does not occur within the each of the K time ranges is less than or
equal to a fourth value, the fourth value being a number greater than or equal to
0.
[0171] A ratio of the number of times that the first event does not occur to the number
of times that the first event occurs within the each of the K time ranges is greater
than or equal to a fifth value, the fifth value being a number greater than or equal
to 0.
[0172] Optionally, the terminal further includes the detection unit 530, configured to perform
at least one of: keeping PDCCH detection in the first control resource set until a
first moment arrives; or, stopping PDCCH detection in the first control resource set
after the first moment, the first control resource set being a resource set for PDCCH
detection before the second event occurs.
[0173] Optionally, the first moment is one of:
a moment at which the occurrence of the second event is determined;
a moment at which the first indication information is sent from the second protocol
layer to the first protocol layer;
a moment at which a signal is reported from the first protocol layer to the second
protocol layer, the signal being one in a second signal set, of which signal quality
is good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, the first message being
used to indicate at least one selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which configuration information for configuring a third control resource
set is received from the network side.
[0174] Optionally, when the first moment is the moment at which the second message is started
to be monitored, or the moment at which the second message is received, or the moment
at which the configuration information is received, the detection unit 530 is further
configured to:
in a case that detection in a first control resource set conflicts with detection
in a second control resource set, perform PDCCH detection by preferential use of the
second control resource set, the second control resource set being exclusively dedicated
to detection of the second message.
[0175] Optionally, the first processing unit 510 is further configured to:
when the first event is continued to be reported to the second protocol layer from
the first protocol layer, stop reporting, at the first protocol layer, the first event
to the second protocol layer from or after a second moment.
[0176] Optionally, the second moment is one of:
a moment at which a signal is reported from the first protocol layer to the second
protocol layer, the signal being one in a second signal set, of which the signal quality
is good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, the first message being
used to indicate a selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which at least one of first indication information, second indication
information, or third indication information sent from the second protocol layer is
received at the first protocol layer.
[0177] The first indication information is used to indicate that the second event has occurred
or instruct the terminal to stop the at least one of the following: measuring the
quality of the signal in the first signal set, determining the occurrence of the first
event, or reporting the first event to the second protocol layer. The second indication
information is used to instruct the terminal to perform at least one of the following:
measuring a signal in the second signal set, reporting a signal in the second signal
set, of which the signal quality is good enough to satisfy the second condition, or
reporting the corresponding measurement result.
[0178] Optionally, each signal in the first signal set corresponds to a respective one of
one or more transmission beams; and each signal in the second signal set corresponds
to a respective one of one or more transmission beams
[0179] Optionally, each signal in the first signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0180] Optionally, the first protocol layer is a physical layer, and the second protocol
layer is a MAC layer.
[0181] Optionally, the second event is used to indicate that a number of times that the
first event has successively occurred exceeds a sixth value.
[0182] It is to be understood that the terminal 500 may correspond to the terminal in the
method 200 and may implement corresponding operations implemented by the terminal
in the method 200. For simplicity, elaborations will be omitted herein.
[0183] FIG. 7 is a schematic block diagram of a terminal 600 according to an embodiment
of the disclosure. As illustrated in FIG. 7, the terminal 600 includes a measurement
unit 610, a determination unit 620 and a detection unit 630.
[0184] The measurement unit 610 is configured to measure a signal in a first signal set
to determine occurrence of a first event, the first event being used to indicate that
quality of the signal in the first signal set is bad enough to satisfy a first condition.
[0185] The determination unit 620 is configured to determine occurrence of a second event
based on an occurrence situation of the first event.
[0186] The detection unit is configured to, when the determination unit 620 determines that
the second event has occurred, perform at least one of the following: keeping PDCCH
detection in the first control resource set until a first moment arrives, or stopping
the PDCCH detection in the first control resource set after the first moment.
[0187] The first control resource set is a resource set for PDCCH detection before the second
event occurs, and the second event is used to indicate that link quality corresponding
to the signal in the first signal set is bad enough to satisfy a second condition.
[0188] Optionally, the first moment is one of:
a moment at which the occurrence of the second event is determined;
a moment at which a signal is reported from the first protocol layer to a second protocol
layer, the signal being one in a second signal set, of which signal quality is good
enough to satisfy a third condition;
a moment at which a first message is sent to a network side, the first message being
used to indicate at least one selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which configuration information for configuring a third control resource
set is received from the network side.
[0189] Optionally, when the first moment is the moment at which the second message is started
to be monitored, or the moment at which the second message is received, or the moment
at which the configuration information is received, the detection unit is further
configured to:
in a case that detection in the first control resource set conflicts with detection
in a second control resource set, perform PDCCH detection by preferential use of the
second control resource set, the second control resource set being exclusively dedicated
to detection of the second message.
[0190] Optionally, each signal in the first signal set corresponds to a respective one of
one or more transmission beams, and each signal in the second signal set corresponds
to a respective one of one or more transmission beams.
[0191] Optionally, each signal in the first signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0192] Optionally, the second event is used to indicate that a number of times that the
first event has successively occurred exceeds a first value.
[0193] It is to be understood that the terminal 600 may correspond to the terminal in the
method 300 and may implement corresponding operations implemented by the terminal
in the method 300. For simplicity, elaborations will be omitted herein.
[0194] FIG. 8 is a schematic block diagram of a terminal 700 according to an embodiment
of the disclosure. As illustrated in FIG. 8, the terminal 700 includes a measurement
unit 710, a determination unit 720, a selection unit 730 and a reporting unit 740.
[0195] The measurement unit 710 is configured to measure a signal in a first signal set
to determine occurrence of a first event, the first event being used to indicate that
quality of the signal in the first signal set is bad enough to satisfy a first condition.
[0196] The determination unit 720 is configured to determine occurrence of a second event
based on an occurrence situation of the first event.
[0197] The measurement unit 710 is further configured to, when the determination unit determines
that the second event has occurred, measure a signal in a second signal set, the second
event being used to indicate that link quality corresponding to the signal in the
first signal set is bad enough to satisfy a second condition.
[0198] The selection unit 730 is configured to select, from the second signal set, at least
one signal of which signal quality is good enough to satisfy a third condition.
[0199] The reporting unit 740 is configured to report the at least one signal to a network
device.
[0200] Optionally, each signal in the first signal set corresponds to a respective one of
one or more transmission beams; and each signal in the second signal set corresponds
to a respective one of one or more transmission beams.
[0201] Optionally, each signal in the first signal set is quasi-colocated with at least
one control resource set with respect to a space receiving parameter.
[0202] Optionally, the second event is used to indicate that a number of times that the
first event has successively occurred exceeds a first value.
[0203] It is to be understood that the terminal 700 may correspond to the terminal in the
method 400 and may implement corresponding operations implemented by the terminal
in the method 400. For simplicity, elaborations will be omitted herein.
[0204] FIG. 9 is a schematic structure diagram of a system chip 800 according to an embodiment
of the disclosure. The system chip 800 of FIG. 9 includes an input interface 801,
output interface 802, processor 803 and memory 804 which may be connected through
an internal communication connecting line. The processor 803 is configured to execute
a code in the memory 804.
[0205] Optionally, when the code is executed, the processor 803 implements the method executed
by the network device in the method embodiment. For simplicity, elaborations are omitted
herein.
[0206] Optionally, when the code is executed, the processor 803 implements the method executed
by the terminal device in the method embodiment. For simplicity, elaborations are
omitted herein.
[0207] FIG. 10 is a schematic block diagram of a communication device 900 according to an
embodiment of the disclosure. As illustrated in FIG. 10, the communication device
900 includes a processor 910 and a memory 920. Herein, the memory 920 may store a
program code, and the processor 910 may execute the program code stored in the memory
920.
[0208] Optionally, as illustrated in FIG. 10, the communication device 900 may include a
transceiver 930, and the processor 910 may control the transceiver 930 for external
communication.
[0209] Optionally, the processor 910 may call the program code stored in the memory 920
to execute corresponding operations of the network device in the method embodiment.
For similarity, elaborations will be omitted herein.
[0210] Optionally, the processor 910 may call the program code stored in the memory 920
to execute corresponding operations of the terminal device in the method embodiment.
For similarity, elaborations will be omitted herein.
[0211] It is to be understood that the processor in the embodiment of the disclosure may
be an integrated circuit chip and has a signal processing capability. In an implementation
process, each operation of the method embodiment may be completed by an integrated
logical circuit of hardware in the processor or instructions in a software form. The
processor may be a universal processor, a Digital Signal Processor (DSP), an Application
Specific Integrated Circuit (ASIC), a Field Programmable Gate Array (FPGA) or another
programmable logical device, discrete gate or transistor logical device and discrete
hardware component. Each method, operation and logical block diagram disclosed in
the embodiments of the disclosure may be implemented or executed. The universal processor
may be a microprocessor or the processor may also be any conventional processor and
the like. The operations of the method disclosed in combination with the embodiments
of the disclosure may be directly embodied to be executed and completed by a hardware
decoding processor or executed and completed by a combination of hardware and software
modules in the decoding processor. The software module may be located in a mature
storage medium in this field such as a Random Access Memory (RAM), a flash memory,
a Read-Only Memory (ROM), a Programmable ROM (PROM) or Electrically Erasable PROM
(EEPROM) and a register. The storage medium is located in a memory, and the processor
reads information in the memory, and completes the operations of the methods in combination
with hardware.
[0212] It can be understood that the memory in the embodiment of the disclosure may be a
volatile memory or a nonvolatile memory, or may include both the volatile and nonvolatile
memories. The nonvolatile memory may be a ROM, a PROM, an Erasable PROM (EPROM), an
EEPROM or a flash memory. The volatile memory may be a RAM, and is used as an external
high-speed cache. It is exemplarily but unlimitedly described that RAMs in various
forms may be adopted, such as a Static RAM (SRAM), a Dynamic RAM (DRAM), a Synchronous
DRAM (SDRAM), a Double Data Rate SDRAM (DDRSDRAM), an Enhanced SDRAM (ESDRAM), a Synchlink
DRAM (SLDRAM) and a Direct Rambus RAM (DR RAM). It is to be noted that the memory
of a system and method described in the disclosure is intended to include, but not
limited to, memories of these and any other proper types.
[0213] Those of ordinary skill in the art may realize that the units and algorithm steps
of each example described in combination with the embodiments disclosed in the disclosure
may be implemented by electronic hardware or a combination of computer software and
the electronic hardware. Whether these functions are executed in a hardware or software
manner depends on specific applications and design constraints of the technical solutions.
Professionals may realize the described functions for each specific application by
use of different methods, but such realization shall fall within the scope of the
disclosure.
[0214] Those skilled in the art may clearly learn about that specific working processes
of the system, device and unit described above may refer to the corresponding processes
in the method embodiment and will not be elaborated herein for convenient and brief
description.
[0215] In some embodiments provided by the disclosure, it is to be understood that the disclosed
system, device and method may be implemented in another manner. For example, the device
embodiment described above is only schematic, and for example, division of the units
is only logic function division, and other division manners may be adopted during
practical implementation. For example, multiple units or components may be combined
or integrated into another system, or some characteristics may be neglected or not
executed. In addition, coupling or direct coupling or communication connection between
each displayed or discussed component may be indirect coupling or communication connection,
implemented through some interfaces, of the device or the units, and may be electrical
and mechanical or adopt other forms.
[0216] The units described as separate parts may or may not be physically separated, and
parts displayed as units may or may not be physical units, and namely may be located
in the same place, or may also be distributed to multiple network units. Part or all
of the units may be selected to achieve the purpose of the solutions of the embodiments
according to a practical requirement.
[0217] In addition, each functional unit in each embodiment of the disclosure may be integrated
into a processing unit, each unit may also physically exist independently, and two
or more than two units may also be integrated into a unit.
[0218] When being realized in form of software functional unit and sold or used as an independent
product, the function may also be stored in a computer-readable storage medium. Based
on such an understanding, the technical solutions of the disclosure substantially
or parts making contributions to the related art or part of the technical solutions
may be embodied in form of software product, and the computer software product is
stored in a storage medium, including a plurality of instructions configured to enable
a computer device (which may be a personal computer, a server, a network device or
the like) to execute all or part of the steps of the method in each embodiment of
the disclosure. The abovementioned storage medium includes: various media capable
of storing program codes such as a U disk, a mobile hard disk, a ROM, a RAM, a magnetic
disk or an optical disk.
[0219] The above is only the specific implementation of the disclosure and not intended
to limit the scope of protection of the disclosure. Any variations or replacements
apparent to those skilled in the art within the technical scope disclosed by the disclosure
shall fall within the scope of protection of the disclosure. Therefore, the scope
of protection of the disclosure shall be subject to the scope of protection of the
claims
1. A method for wireless communication, comprising:
reporting, by a terminal, at a first protocol layer, a first event to a second protocol
layer, wherein the first event is used to indicate that quality of a signal in a first
signal set is bad enough to satisfy a first condition; and
when the terminal determines, at the second protocol layer, occurrence of a second
event based on an occurrence situation of the first event,
stopping, by the terminal, at least one of the following at the first protocol layer:
measuring the quality of the signal in the first signal set, determining occurrence
of the first event, or reporting the first event to the second protocol layer; or,
continuing, by the terminal, the at least one of the following at the first protocol
layer: measuring the quality of the signal in the first signal set, determining the
occurrence of the first event, or reporting the first event to the second protocol
layer,
wherein the second event is used to indicate that link quality corresponding to the
signal in the first signal set is bad enough to satisfy a second condition.
2. The method of claim 1, wherein stopping, by the terminal, at the first protocol layer,
the at least one of measuring the quality of the signal in the first signal set, determining
the occurrence of the first event, or reporting the first event to the second protocol
layer comprises:
when the terminal determines at the second protocol layer that the second event has
occurred, sending, at the second protocol layer, first indication information to the
first protocol layer, wherein the first indication information is used to indicate
that the second event has occurred or instruct the terminal to stop the at least one
of the following: measuring the quality of the signal in the first signal set, determining
the occurrence of the first event, or reporting the first event to the second protocol
layer; and
responsive to the first indication information, stopping, by the terminal, the at
least one of the following at the first protocol layer: measuring the quality of the
signal in the first signal set, determining the occurrence of the first event, or
reporting the first event to the second protocol layer.
3. The method of claim 1 or 2, further comprising:
sending, by the terminal, second indication information to the first protocol layer
from the second protocol layer, wherein the second indication information is used
to instruct the terminal to perform at least one of the following: measuring a signal
in a second signal set, reporting a signal in the second signal set, of which signal
quality is good enough to satisfy a third condition, or reporting a corresponding
measurement result.
4. The method of claim 3, further comprising:
responsive to the second indication information, performing, by the terminal, the
at least one of the following at the first protocol layer: measuring the signal in
the second signal set, reporting the signal in the second signal set, of which the
signal quality is good enough to satisfy the third condition, or reporting the corresponding
measurement result.
5. The method of any one of claims 1-4, further comprising:
when the terminal continues reporting, at the first protocol layer, the first event
to the second protocol layer, determining, by the terminal, at the second protocol
layer, whether the link quality corresponding to the signal in the first signal set
is good enough to satisfy a fourth condition according to a situation of the first
event that is continued to be reported.
6. The method of claim 5, further comprising:
in response to that the terminal determines at the second protocol layer that the
link quality corresponding to the signal in the first signal set is not good enough
to satisfy the fourth condition, continuing, by the terminal, at least one of the
following: executing a link reconfiguration procedure triggered by the second event,
or incrementing a timer corresponding to the link reconfiguration procedure.
7. The method of claim 5, further comprising:
in response to that the terminal determines at the second protocol layer that the
link quality corresponding to the signal in the first signal set is good enough to
satisfy the fourth condition, performing, by the terminal, at least one of the following:
aborting a link reconfiguration procedure triggered by the second event, or stopping
a timer corresponding to the link reconfiguration procedure.
8. The method of claim 6 or 7, wherein the link reconfiguration procedure comprises at
least one of:
selecting, from a second signal set, a signal of which signal quality is good enough
to satisfy a third condition;
sending a first message to a network side, wherein the first message is used to indicate
the selected signal; or,
monitoring a second message sent by the network side responsive to the first message.
9. The method of claim 5 or 7, further comprising:
in response to that the terminal determines at the second protocol layer that the
link quality corresponding to the signal in the first signal set is good enough to
satisfy the fourth condition, continuing, by the terminal, Physical Downlink Control
Channel (PDCCH) detection in a first control resource set, wherein the first control
resource set is a resource set for PDCCH detection before the second event occurs.
10. The method of any one of claims 5-9, wherein the fourth condition comprises at least
one of:
a number of times that the first event occurs within each of K time ranges is less
than or equal to a first value, wherein the first value is a number greater than or
equal to 0;
a number of times that the second event occurs within the each of the K time ranges
is less than or equal to a second value, wherein the second value is a number greater
than or equal to 0;
a number of times that the second event occurs within the K time ranges is less than
or equal to a third value, wherein the third value is a number greater than or equal
to 0;
a ratio of the number of times that the first event occurs to a number of times that
the first event does not occur within the each of the K time ranges is less than or
equal to a fourth value, wherein the fourth value is a number greater than or equal
to 0; or,
a ratio of the number of times that the first event does not occur to the number of
times that the first event occurs within the each of the K time ranges is greater
than or equal to a fifth value, wherein the fifth value is a number greater than or
equal to 0.
11. The method of any one of claims 1-10, further comprising at least one of:
keeping, by the terminal, PDCCH detection in a first control resource set until a
first moment arrives; or,
stopping, by the terminal, the PDCCH detection in the first control resource set after
the first moment,
wherein the first control resource set is a resource set for PDCCH detection before
the second event occurs.
12. The method of claim 11, wherein the first moment is one of:
a moment at which the occurrence of the second event is determined;
a moment at which the first indication information is sent from the second protocol
layer to the first protocol layer;
a moment at which a signal is reported from the first protocol layer to the second
protocol layer, wherein the signal is one in a second signal set, of which signal
quality is good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, wherein the first message
is used to indicate at least one selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which configuration information for configuring a third control resource
set is received from the network side.
13. The method of claim 12, further comprising:
when the first moment is the moment at which the second message is started to be monitored,
or the moment at which the second message is received, or the moment at which the
configuration information is received,
in a case that detection in the first control resource set conflicts with detection
in a second control resource set, performing, by the terminal, PDCCH detection by
preferential use of the second control resource set, wherein the second control resource
set is exclusively dedicated to detection of the second message.
14. The method of any one of claims 1-13, further comprising:
when the terminal continues reporting, at the first protocol layer, the first event
to the second protocol layer, stopping reporting, by the terminal, at the first protocol
layer, the first event to the second protocol layer from or after a second moment.
15. The method of claim 14, wherein the second moment is one of:
a moment at which a signal is reported from the first protocol layer to the second
protocol layer, wherein the signal is one in a second signal set, of which signal
quality is good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, wherein the first message
is used to indicate a selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which at least one of first indication information, second indication
information, or third indication information sent from the second protocol layer is
received at the first protocol layer,
wherein the first indication information is used to indicate that the second event
has occurred, or instruct the terminal to stop the at least one of the following:
measuring the quality of the signal in the first signal set, determining the occurrence
of the first event, or reporting the first event to the second protocol layer; and
wherein the second indication information is used to instruct the terminal to perform
at least one of the following:
measuring a signal in the second signal set;
reporting the signal in the second signal set, of which the signal quality is good
enough to satisfy the second condition; or
reporting a corresponding measurement result.
16. The method of any one of claims 1-15, wherein each signal in the first signal set
corresponds to a respective one of one or more transmission beams; and each signal
in the second signal set corresponds to a respective one of one or more transmission
beams.
17. The method of any one of claims 1-15, wherein each signal in the first signal set
is quasi-colocated with at least one control resource set with respect to a space
receiving parameter.
18. The method of any one of claims 1-17, wherein the first protocol layer is a physical
layer, and the second protocol layer is a Media Access Control (MAC) layer.
19. The method of any one of claims 1-18, wherein the second event is used to indicate
that a number of times that the first event has successively occurred exceeds a sixth
value.
20. A method for wireless communication, comprising:
measuring, by a terminal, a signal in a first signal set to determine occurrence of
a first event, wherein the first event is used to indicate that quality of the signal
in the first signal set is bad enough to satisfy a first condition; and
when the terminal determines occurrence of a second event based on an occurrence situation
of the first event, performing, by the terminal, at least one of the following: keeping
Physical Downlink Control Channel (PDCCH) detection in a first control resource set
until a first moment arrives, or stopping the PDCCH detection in the first control
resource set after the first moment,
wherein the second event is used to indicate that link quality corresponding to the
signal in the first signal set is bad enough to satisfy a second condition, and the
first control resource set is a resource set for PDCCH detection before the second
event occurs.
21. The method of claim 20, wherein the first moment is one of:
a moment at which the occurrence of the second event is determined;
a moment at which a signal is reported from the first protocol layer to a second protocol
layer, wherein the signal is one in a second signal set, of which signal quality is
good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, wherein the first message
is used to indicate at least one selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which configuration information for configuring a third control resource
set is received from the network side.
22. The method of claim 20 or 21, further comprising:
when the first moment is the moment at which the second message is started to be monitored,
or the moment at which the second message is received, or the moment at which the
configuration information is received,
in a case that detection in the first control resource set conflicts with detection
in a second control resource set, performing, by the terminal, PDCCH detection by
preferential use of the second control resource set, wherein the second control resource
set is exclusively dedicated to detection of the second message.
23. The method of any one of claims 20-22, wherein each signal in the first signal set
corresponds to a respective one of one or more transmission beams, and each signal
in the second signal set corresponds to a respective one of one or more transmission
beams.
24. The method of any one of claims 20-23, wherein each signal in the first signal set
is quasi-colocated with at least one control resource set with respect to a space
receiving parameter.
25. The method of any one of claims 20-24, wherein the second event is used to indicate
that a number of times that the first event has successively occurred exceeds a first
value.
26. A method for wireless communication, comprising:
measuring, by a terminal, a signal in a first signal set to determine occurrence of
a first event, wherein the first event is used to indicate that quality of the signal
in the first signal set is bad enough to satisfy a first condition;
when the terminal determines occurrence of a second event based on an occurrence situation
of the first event, measuring, by the terminal, a signal in a second signal set, wherein
the second event is used to indicate that link quality corresponding to the signal
in the first signal set is bad enough to satisfy a second condition; and
selecting, from the second signal set, at least one signal of which signal quality
is good enough to satisfy a third condition, and reporting the at least one signal
to a network device.
27. The method of claim 26, wherein each signal in the first signal set corresponds to
a respective one of one or more transmission beams; and each signal in the second
signal set corresponds to a respective one of one or more transmission beams.
28. The method of claim 26 or 27, wherein each signal in the first signal set is quasi-colocated
with at least one control resource set with respect to a space receiving parameter.
29. The method of any one of claims 26-28, wherein the second event is used to indicate
that a number of times that the first event has successively occurred exceeds a first
value.
30. A terminal, comprising:
a first processing unit, configured to report, at a first protocol layer, a first
event to a second protocol layer, wherein the first event is used to indicate that
quality of a signal in a first signal set is bad enough to satisfy a first condition;
and
a second processing unit, configured to determine, at the second protocol layer, occurrence
of a second event based on an occurrence situation of the first event, wherein the
second event is used to indicate that link quality corresponding to the signal in
the first signal set is bad enough to satisfy a second condition;
wherein the first processing unit is further configured to, when the second event
has occurred, stop at least one of the following at the first protocol layer: measuring
the quality of the signal in the first signal set, determining occurrence of the first
event, or reporting the first event to the second protocol layer; or, continue the
at least one of the following at the first protocol layer: measuring the quality of
the signal in the first signal set, determining the occurrence of the first event,
or reporting the first event to the second protocol layer.
31. The terminal of claim 30, wherein the second processing unit is further configured
to:
when it is determined at the second protocol layer that the second event has occurred,
send, at the second protocol layer, first indication information to the first protocol
layer, wherein the first indication information is used to indicate that the second
event has occurred or instruct the terminal to stop the at least one of the following:
measuring the quality of the signal in the first signal set, determining the occurrence
of the first event, or reporting the first event to the second protocol layer; and
the first processing unit is configured to, responsive to the first indication information,
stop the at least one of the following at the first protocol layer: measuring the
quality of the signal in the first signal set, determining the occurrence of the first
event, or reporting the first event to the second protocol layer.
32. The terminal of claim 30 or 31, wherein the second processing unit is further configured
to:
send, at the second protocol layer, second indication information to the first protocol
layer, wherein the second indication information is used to instruct the terminal
to perform at least one of the following: measuring a signal in a second signal set,
reporting a signal in the second signal set, of which signal quality is good enough
to satisfy a third condition, or reporting a corresponding measurement result.
33. The terminal of claim 32, wherein the first processing unit is further configured
to:
responsive to the second indication information, perform the at least one of the following
at the first protocol layer: measuring the signal in the second signal, reporting
the signal in the second signal set, of which the signal quality is good enough to
satisfy the third condition, or reporting the corresponding measurement result.
34. The terminal of any one of claims 30-33, wherein the first processing unit is further
configured to:
when the terminal continues reporting, at the first protocol layer, the first event
to the second protocol layer, determine whether the link quality corresponding to
the signal in the first signal set is good enough to satisfy a fourth condition at
the second protocol layer according to a situation of the first event that is continued
to be reported.
35. The terminal of claim 34, wherein the second processing unit is further configured
to:
when it is determined at the second protocol layer that the link quality corresponding
to the signal in the first signal set is not good enough to satisfy the fourth condition,
continue at least one of the following: executing a link reconfiguration procedure
triggered by the second event, or incrementing a timer corresponding to the link reconfiguration
procedure.
36. The terminal of claim 34, wherein the second processing unit is further configured
to:
when it is determined at the second protocol layer that the link quality corresponding
to the signal in the first signal set is good enough to satisfy the fourth condition,
perform at least one of the following: aborting a link reconfiguration procedure triggered
by the second event, or stopping a timer corresponding to the link reconfiguration
procedure.
37. The terminal of claim 35 or 36, wherein the link reconfiguration procedure comprises
at least one of:
selecting, from the second signal set, a signal of which the signal quality is good
enough to satisfy a third condition;
sending a first message to a network side, wherein the first message is used to indicate
the selected signal; or,
monitoring a second message sent by the network side responsive to the first message.
38. The terminal of claim 34 or 36, further comprising:
a detection unit, configured to, when the second processing unit determines at the
second protocol layer that the link quality corresponding to the signal in the first
signal set is good enough to satisfy the fourth condition, continue Physical Downlink
Control Channel (PDCCH) detection in a first control resource set, wherein the first
control resource set is a resource set for PDCCH detection before the second event
occurs.
39. The terminal of any one of claims 34-38, wherein the fourth condition comprises at
least one of:
a number of times that the first event occurs within each of K time ranges is less
than or equal to a first value, wherein the first value is a number greater than or
equal to 0;
a number of times that the second event occurs within the each of the K time ranges
is less than or equal to a second value, wherein the second value is a number greater
than or equal to 0;
a number of times that the second event occurs within the K time ranges is less than
or equal to a third value, wherein the third value is a number greater than or equal
to 0;
a ratio of the number of times that the first event occurs to a number of times that
the first event does not occur within the each of the K time ranges is less than or
equal to a fourth value, wherein the fourth value is a number greater than or equal
to 0; or,
a ratio of the number of times that the first event does not occur to the number of
times that the first event occurs within the each of the K time ranges is greater
than or equal to a fifth value, wherein the fifth value is a number greater than or
equal to 0.
40. The terminal of any one of claims 30-39, further comprising:
a detection unit, configured to perform at least one of: keeping PDCCH detection in
a first control resource set until a first moment arrives; or, stopping the PDCCH
detection in the first control resource set after the first moment,
wherein the first control resource set is a resource set for PDCCH detection before
the second event occurs.
41. The terminal of claim 40, wherein the first moment is one of:
a moment at which the occurrence of the second event is determined;
a moment at which the first indication information is sent from the second protocol
layer to the first protocol layer;
a moment at which a signal is reported from the first protocol layer to the second
protocol layer, wherein the signal is one in a second signal set, of which signal
quality is good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, wherein the first message
is used to indicate at least one selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which configuration information for configuring a third control resource
set is received from the network side.
42. The terminal of claim 41, wherein, when the first moment is the moment at which the
second message is started to be monitored, or the moment at which the second message
is received, or the moment at which the configuration information is received, the
detection unit is further configured to:
in a case that detection in a first control resource set conflicts with detection
in a second control resource set, perform PDCCH detection by preferential use of the
second control resource set, wherein the second control resource set is exclusively
dedicated to detection of the second message.
43. The terminal of any one of claims 30-42, wherein the first processing unit is further
configured to:
when the first event is continued to be reported to the second protocol layer from
the first protocol layer, stop reporting, at the first protocol layer, the first event
to the second protocol layer from or after a second moment.
44. The terminal of claim 43, wherein the second moment is one of:
a moment at which a signal is reported from the first protocol layer to the second
protocol layer, wherein the signal is one in a second signal set, of which the signal
quality is good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, wherein the first message
is used to indicate a selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which at least one of first indication information, second indication
information, or third indication information sent from the second protocol layer is
received at the first protocol layer,
wherein the first indication information is used to indicate that the second event
has occurred or instruct the terminal to stop the at least one of the following: measuring
the quality of the signal in the first signal set, determining the occurrence of the
first event, or reporting the first event to the second protocol layer; and
wherein the second indication information is used to instruct the terminal to perform
at least one of the following: measuring a signal in the second signal set; reporting
the signal in the second signal set, of which the signal quality is good enough to
satisfy the second condition; or reporting a corresponding measurement result.
45. The terminal of any one of claims 30-44, wherein each signal in the first signal set
corresponds to a respective one of one or more transmission beams; and each signal
in the second signal set corresponds to a respective one of one or more transmission
beams.
46. The terminal of any one of claims 30-44, wherein each signal in the first signal set
is quasi-colocated with at least one control resource set with respect to a space
receiving parameter.
47. The terminal of any one of claims 30-46, wherein the first protocol layer is a physical
layer, and the second protocol layer is a Media Access Control (MAC) layer.
48. The terminal of any one of claims 30-47, wherein the second event is used to indicate
that a number of times that the first event has successively occurred exceeds a sixth
value.
49. A terminal, comprising:
a measurement unit, configured to measure a signal in a first signal set to determine
occurrence of a first event, wherein the first event is used to indicate that quality
of the signal in the first signal set is bad enough to satisfy a first condition;
a determination unit, configured to determine occurrence of a second event based on
an occurrence situation of the first event; and
a detection unit, configured to, when the determination unit determines that the second
event has occurred, perform at least one of the following: keeping Physical Downlink
Control Channel (PDCCH) detection in the first control resource set until a first
moment arrives, or stopping the PDCCH detection in the first control resource set
after the first moment,
wherein the first control resource set is a resource set for PDCCH detection before
the second event occurs, and the second event is used to indicate that link quality
corresponding to the signal in the first signal set is bad enough to satisfy a second
condition.
50. The terminal of claim 49, wherein the first moment is one of:
a moment at which the occurrence of the second event is determined;
a moment at which a signal is reported from the first protocol layer to a second protocol
layer, wherein the signal is one in a second signal set, of which signal quality is
good enough to satisfy a third condition;
a moment at which a first message is sent to a network side, wherein the first message
is used to indicate at least one selected signal;
a moment at which a second message sent by the network side responsive to the first
message is started to be monitored;
a moment at which the second message is received; or,
a moment at which configuration information for configuring a third control resource
set is received from the network side.
51. The terminal of claim 49 or 50, wherein, when the first moment is the moment at which
the second message is started to be monitored, or the moment at which the second message
is received or the moment at which the configuration information is received, the
detection unit is further configured to:
in a case that detection in the first control resource set conflicts with detection
in a second control resource set, perform PDCCH detection by preferential use of the
second control resource set, wherein the second control resource set is exclusively
dedicated to detection of the second message.
52. The terminal of any one of claims 49-51, wherein each signal in the first signal set
corresponds to a respective one of one or more transmission beams, and each signal
in the second signal set corresponds to a respective one of one or more transmission
beams.
53. The terminal of any one of claims 49-52, wherein each signal in the first signal set
is quasi-colocated with at least one control resource set with respect to a space
receiving parameter.
54. The terminal of any one of claims 49-53, wherein the second event is used to indicate
that a number of times that the first event has successively occurred exceeds a first
value.
55. A terminal, comprising:
a measurement unit, configured to measure a signal in a first signal set to determine
occurrence of a first event, wherein the first event is used to indicate that quality
of the signal in the first signal set is bad enough to satisfy a first condition;
a determination unit, configured to determine occurrence of a second event based on
an occurrence situation of the first event;
wherein the measurement unit is further configured to, when the determination unit
determines that the second event has occurred, measure a signal in a second signal
set, wherein the second event is used to indicate that link quality corresponding
to the signal in the first signal set is bad enough to satisfy a second condition;
a selection unit, configured to select, from the second signal set, at least one signal
of which signal quality is good enough to satisfy a third condition; and
a reporting unit, configured to report the at least one signal to a network device.
56. The terminal of claim 55, wherein each signal in the first signal set corresponds
to a respective one of one or more transmission beams; and each signal in the second
signal set corresponds to a respective one of one or more transmission beams.
57. The terminal of claim 55 or 56, wherein each signal in the first signal set is quasi-colocated
with at least one control resource set with respect to a space receiving parameter.
58. The terminal of any one of claims 55-57, wherein the second event is used to indicate
that a number of times that the first event has successively occurred exceeds a first
value.